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Hierarchical porous ZnWO4 microspheres synthesized by ultrasonic spray pyrolysis : characterization, mechanistic and photocatalytic NOx removal studies

机译:超声喷雾热解合成多层多孔ZnWO4微球:表征,机理及光催化脱氮研究

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摘要

Solar-light-driven photocatalysts with porous structure are preferred for gaseous pollutants removal at low concentration levels. In this study, hierarchical porous ZnWO4 microspheres were synthesized by a facile ultrasonic spray pyrolysis method for the first time. The as-prepared ZnWO4 samples were composed of microspheres with diameter ranging from 0.1 to 2 μm and it was revealed that these microspheres are formed by the self-assembly of nanoparticles. The photocatalytic performances of these microspheres were evaluated by the degradation of gaseous NOx under simulated solar light irradiation. It was found that the ZnWO4 batch synthesized at 700 °C exhibited superior photocatalytic activity to those synthesized at 650 °C and 750 °C as well as Degussa TiO2 P25. Both OH and O2 - radicals were found to be the major reactive species involved for NOx degradation as identified by electron spin resonance spectroscopy (ESR) method, which was consistent with the theoretical analysis. The excellent catalytic activity of ZWO-700 was attributed to its special hierarchical porous structure, which facilitated the separation/diffusion of the photogenerated charge carriers and the diffusion of intermediates and final products of NOx oxidation. The photocatalytic NOx removal mechanism over ZnWO4 samples was also proposed. This study suggests that ultrasonic spray pyrolysis is a facile and scalable process to fabricate ZnWO4 porous microspheres which are promising photocatalytic materials for gaseous pollutants purification.
机译:具有多孔结构的太阳光驱动的光催化剂优选用于低浓度水平的气态污染物去除。在这项研究中,首次通过简便的超声喷雾热解方法合成了分层多孔ZnWO4微球。所制备的ZnWO4样品由直径范围为0.1至2μm的微球组成,这些微球是由纳米粒子的自组装形成的。这些微球的光催化性能通过模拟的太阳光照射下气态NOx的降解来评估。发现在700°C合成的ZnWO4批料显示出比在650°C和750°C合成的ZnWO4以及Degussa TiO2 P25更好的光催化活性。通过电子自旋共振光谱法(ESR)鉴定,发现OH和O2-自由基都是涉及NOx降解的主要反应物种,这与理论分析相符。 ZWO-700优异的催化活性归因于其特殊的分层多孔结构,它促进了光生电荷载体的分离/扩散以及中间产物和NOx氧化终产物的扩散。还提出了对ZnWO4样品的光催化脱氮机理。这项研究表明,超声喷雾热解是制造ZnWO4多孔微球的简便且可扩展的过程,这是有希望的光催化材料,用于净化气态污染物。

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